Jiang Wenguang, Li Xiangguo, Lv Yang, Zhou Mingkai, Liu Zhuolin, Ren Zhaofeng, Yu Zhuqing
State Key Laboratory of Silicate Materials for Architectures, Wuhan University of Technology, Wuhan 430070, China.
College of Materials Science and Engineering, Nanjing Tech University, Nanjing 210000, China.
Nanomaterials (Basel). 2018 Aug 21;8(9):638. doi: 10.3390/nano8090638.
The influence of graphene oxide (GO) and polyvinyl alcohol (PVA) fiber on the mechanical performance, durability, and microstructure of cement-based materials was investigated in this study. The results revealed that compared with a control sample, the mechanical strength and durability of cement-based materials were significantly improved by adding PVA fiber and GO. The compressive and flexural strength at 28 d were increased by 30.2% and 39.3%, respectively. The chloride migration coefficient at 28 d was reduced from 7.3 × 10 m²/s to 4.3 × 10 m²/s. Under a sulfate corrosion condition for 135 d, the compressive and flexural strength still showed a 13.9% and 12.3% gain, respectively. Furthermore, from the Mercury Intrusion Porosimetry (MIP) test, with the incorporation of GO, the cumulative porosity decreased from more than 0.13 cm³/g to about 0.03 cm³/g, and the proportion of large capillary pores reduced from around 80% to 30% and that of medium capillary pores increased from approximately 20% to 50%. Scanning electron microscope (SEM) images showed a significant amount of hydration products adhering to the surface of PVA fiber in the GO and PVA fiber modified sample. The addition of GO coupling with PVA fiber in cement-based materials could promote hydration of cement, refine the microstructure, and significantly improve mechanical strength and durability.
本研究考察了氧化石墨烯(GO)和聚乙烯醇(PVA)纤维对水泥基材料力学性能、耐久性和微观结构的影响。结果表明,与对照样品相比,添加PVA纤维和GO可显著提高水泥基材料的力学强度和耐久性。28天的抗压强度和抗折强度分别提高了30.2%和39.3%。28天的氯离子迁移系数从7.3×10⁻¹²m²/s降至4.3×10⁻¹²m²/s。在135天的硫酸盐腐蚀条件下,抗压强度和抗折强度仍分别提高了13.9%和12.3%。此外,通过压汞法(MIP)测试可知,加入GO后,累积孔隙率从超过0.13cm³/g降至约0.03cm³/g,大毛细孔比例从约80%降至30%,中毛细孔比例从约20%增至50%。扫描电子显微镜(SEM)图像显示,在GO和PVA纤维改性样品中,大量水化产物附着在PVA纤维表面。在水泥基材料中添加GO并与PVA纤维耦合,可促进水泥水化,细化微观结构,并显著提高力学强度和耐久性。